Bridging-driven condensation by eukaryotic SMC complexes is a conserved feature of genome organization

Journal Article (2026)
Author(s)

Jae Won Jang (Seoul National University)

Torahiko L. Higashi (Francis Crick Institute)

Minzhe Tang (Francis Crick Institute)

Changyeop Kim (Korea Advanced Institute of Science and Technology)

Yoshimi Kinoshita (Kyoto University, Graduate School of Science)

Hajin Myeong (Seoul National University, Interdisciplinary Program in Genetic Engineering)

Joonyoung Lee (Seoul National University)

Cees Dekker (TU Delft - Applied Sciences, Kavli institute of nanoscience Delft)

Je Kyung Ryu (Seoul National University, Interdisciplinary Program in Genetic Engineering)

More Authors (External organisation)

Research Group
BN/Cees Dekker Lab
DOI related publication
https://doi.org/10.1093/nar/gkag850 Final published version
More Info
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Publication Year
2026
Language
English
Research Group
BN/Cees Dekker Lab
Journal title
Nucleic Acids Research
Issue number
16
Volume number
54
Article number
gkag850
Page Views
16
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Abstract

The Structural Maintenance of Chromosome (SMC) protein family plays a central role in higher-order genome organization through ATP-dependent DNA loop extrusion by cohesin and condensin and other processes. Whether these activities fully account for the complexity of chromosome architecture remains unknown. Here, we uncover a conserved ATP-independent mechanism of chromatin condensation by SMC complexes, occurring via biomolecular condensation. Using single-molecule fluorescence imaging, we show that a variety of SMCs form dynamic DNA-bound condensates that exhibit key features of biomolecular condensates, including droplet coalescence, fluorescence recovery after photobleaching, and rapid exchange with free SMC complexes. Atomic force microscopy analysis of human cohesin–DNA assemblies reveals DNA-length-dependent clustering, providing evidence for bridging-driven condensation. Analyses of in vivo super-resolution imaging and high-throughput chromosome conformation capture (Hi-C) data indicate that these condensates form chromatin-associated clusters with multi-loop structures. Together, our results establish that SMC complexes employ ATP-independent phase condensation as well as ATP-dependent activities to shape genome architecture. This work reveals a broadly conserved principle of chromosomal organization across eukaryotes.